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<edm:dataProvider>University of Veterinary Medicine Vienna</edm:dataProvider>

  
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<dc:title xml:lang="en">Polarization-insensitive optical coherence tomography using pseudo-depolarized reference light for mitigating birefringence-related image artifacts</dc:title>

  
<dc:description xml:lang="en">Optical coherence tomography (OCT) images are prone to image artifacts due to the birefringence of the sample or the optical system when a polarized light source is used for imaging. These artifacts can lead to degraded image quality and diagnostic information.We aim to mitigate these birefringence-related artifacts in OCT images by adding a depolarizer module in the reference arm of the interferometer.We investigated different configurations of liquid crystal patterned retarders as pseudo-depolarizers in the reference arm of OCT setups. We identified the most effective depolarization module layout for polarization artifact suppression for a spectral-domain OCT system based on a Michelson and a Mach-Zehnder interferometer.The performance of our approach was demonstrated in an achromatic quarter-wave plate allowing the selection of a variety of sample polarization states. A substantial improvement of the OCT signal magnitude was observed after placing the optimal depolarizer configuration, reducing the cross-polarization artifact from 5.7 to 1.8 dB and from 8.0 to 1.0 dB below the co-polarized signal for the fiber-based Michelson and Mach-Zehnder setup, respectively. An imaging experiment in the birefringent scleral tissue of a post-mortem alpine marmot eye and a mouse tail specimen further showcased a significant improvement in the detected signal intensity and an enhanced OCT image quality followed by a drastic elimination of the birefringence-related artifacts.Our study presents a simple yet cost-effective technique to mitigate birefringence-related artifacts in OCT imaging. This method can be readily implemented in existing OCT technology and improve the effectiveness of various OCT imaging applications in biomedicine.</dc:description>

  
<dc:identifier rdf:resource="https://phaidra.vetmeduni.ac.at/o:3859"></dc:identifier>

  
<dc:language>en</dc:language>

  
<edm:type>TEXT</edm:type>

  
<dc:type>journal article</dc:type>

  
<dc:type>Wissenschaftlicher Artikel</dc:type>

  
<dc:type xml:lang="de">Text</dc:type>

  
<dc:type xml:lang="de">Wissenschaftlicher Artikel</dc:type>

  
<dc:type xml:lang="en">Text</dc:type>

  
<dc:type xml:lang="en">journal article</dc:type>

  
<dc:subject xml:lang="en">Tomography, Optical Coherence Methods</dc:subject>

  
<dc:subject xml:lang="en">Tomography, Optical Coherence Instrumentation</dc:subject>

  
<dc:subject xml:lang="en">Birefringence</dc:subject>

  
<dc:subject xml:lang="en">Artifacts</dc:subject>

  
<dc:subject xml:lang="en">Animals</dc:subject>

  
<dc:subject xml:lang="en">Mice</dc:subject>

  
<dc:subject xml:lang="en">Equipment Design</dc:subject>

  
<dc:subject xml:lang="en">Interferometry Methods</dc:subject>

  
<dc:subject xml:lang="en">Interferometry Instrumentation</dc:subject>

  
<dc:subject xml:lang="en">Image Processing, Computer-Assisted Methods</dc:subject>

  
<dcterms:issued>2024</dcterms:issued>

  
<dc:date>2024</dc:date>

  
<dc:creator>Maria Varaka</dc:creator>

  
<dc:creator>Conrad W. Merkle</dc:creator>

  
<dc:creator>Lucas May</dc:creator>

  
<dc:creator>Félix Fanjul-Vélez</dc:creator>

  
<dc:creator>Sybren Worm</dc:creator>

  
<dc:creator>Marco Augustin</dc:creator>

  
<dc:creator>Hsiang-Chieh Lee</dc:creator>

  
<dc:creator>Adelheid Wöhrer</dc:creator>

  
<dc:creator>Martin Glösmann</dc:creator>

  
<dc:creator>Bernhard Baumann</dc:creator>

  
<dc:publisher>Spie</dc:publisher>

  
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